For successful operation of Wendelstein 7-X (W7-X) control of plasma impurity content and fuel recycling is required. This can be achieved by using wall conditioning methods. During the first divertor operation campaign (OP1.2a) of W7-X glow discharge conditioning (GDC), weekly in hydrogen and daily in helium for impurity and hydrogen removal respectively, was used in the absence of the magnetic field. He electron cyclotron resonance heating (ECRH) discharges were applied for density control in hydrogen plasmas during experimental days. The optimization of GDC and He ECRH wall conditioning on W7-X are presented. Solutions for glow discharge ignition problems are examined. The suitable He-GDC parameters, i. e. anode current and neutral gas p...
Ion Cyclotron Wall Conditioning (ICWC), applicable in presence of the toroidal magnetic field, is en...
JT-60SA envisions electron cyclotron wall conditioning (ECWC), as wall conditioning method in the pr...
At the stellarator Wendelstein 7-X (W7-X) Electron Cyclotron Resonance Heating (ECRH) is the main he...
For successful operation of Wendelstein 7-X (W7-X) control of plasma impurity content and fuel recyc...
Controlling the recycling of hydrogen and the release of impurities from the plasma facing component...
Wall conditioning plays an important role in achieving record plasma performance on the superconduct...
For stellarators, which need no or only small amounts of current drive, electron-cyclotron-resonance...
The influence of a number of parameters on the cleaning and preconditioning efficiency of a combined...
\u3cp\u3eThe optimized superconducting stellarator device Wendelstein 7-X (with major radius R = 5.5...
In its second operation phase (OP1.2a) W7-X was equipped with full 3d island divertor and an upgrade...
Electron Cyclotron (EC) waves will be routinely used in future reactors not only for plasma heating ...
For stellarators, which need no or only small amounts of current drive, electron-cyclotron-resonance...
Hydrogen- and deuterium-fueled glow discharges are used for the initial conditioning of magnetic fus...
Electron Cyclotron Resonance Heating (ECRH) is a key component in the heating arsenal for the next s...
Ion Cyclotron Wall Conditioning (ICWC), applicable in presence of the toroidal magnetic field, is en...
JT-60SA envisions electron cyclotron wall conditioning (ECWC), as wall conditioning method in the pr...
At the stellarator Wendelstein 7-X (W7-X) Electron Cyclotron Resonance Heating (ECRH) is the main he...
For successful operation of Wendelstein 7-X (W7-X) control of plasma impurity content and fuel recyc...
Controlling the recycling of hydrogen and the release of impurities from the plasma facing component...
Wall conditioning plays an important role in achieving record plasma performance on the superconduct...
For stellarators, which need no or only small amounts of current drive, electron-cyclotron-resonance...
The influence of a number of parameters on the cleaning and preconditioning efficiency of a combined...
\u3cp\u3eThe optimized superconducting stellarator device Wendelstein 7-X (with major radius R = 5.5...
In its second operation phase (OP1.2a) W7-X was equipped with full 3d island divertor and an upgrade...
Electron Cyclotron (EC) waves will be routinely used in future reactors not only for plasma heating ...
For stellarators, which need no or only small amounts of current drive, electron-cyclotron-resonance...
Hydrogen- and deuterium-fueled glow discharges are used for the initial conditioning of magnetic fus...
Electron Cyclotron Resonance Heating (ECRH) is a key component in the heating arsenal for the next s...
Ion Cyclotron Wall Conditioning (ICWC), applicable in presence of the toroidal magnetic field, is en...
JT-60SA envisions electron cyclotron wall conditioning (ECWC), as wall conditioning method in the pr...
At the stellarator Wendelstein 7-X (W7-X) Electron Cyclotron Resonance Heating (ECRH) is the main he...